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Heart-lung Interactions During Mechanical Ventilation: the Basics

Overview
Journal Ann Transl Med
Date 2018 Oct 30
PMID 30370276
Citations 74
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Abstract

The hemodynamic effects of mechanical ventilation can be grouped into three clinically relevant concepts. First, since spontaneous ventilation is exercise. In patients increased work of breathing, initiation of mechanical ventilatory support may improve O delivery because the work of breathing is reduced. Second, changes in lung volume alter autonomic tone, pulmonary vascular resistance, and at high lung volumes compress the heart in the cardiac fossa similarly to cardiac tamponade. As lung volume increases so does the pressure difference between airway and pleural pressure. When this pressure difference exceeds pulmonary artery pressure, pulmonary vessels collapse as they pass form the pulmonary arteries into the alveolar space increasing pulmonary vascular resistance. Hyperinflation increases pulmonary vascular resistance impeding right ventricular ejection. Anything that over distends lung units will increase their vascular resistance, and if occurring globally throughout the lung, increase pulmonary vascular resistance. Decreases in end-expiratory lung volume cause alveolar collapse increases pulmonary vasomotor tone by the process of hypoxic pulmonary vasoconstriction. Recruitment maneuvers that restore alveolar oxygenation without over distention will reduce pulmonary artery pressure. Third, positive-pressure ventilation increases intrathoracic pressure. Since diaphragmatic descent increases intra-abdominal pressure, the decrease in the pressure gradient for venous return is less than would otherwise occur if the only change were an increase in right atrial pressure. However, in hypovolemic states, it can induce profound decreases in venous return. Increases in intrathoracic pressure decreases left ventricular afterload and will augment left ventricular ejection. In patients with hypervolemic heart failure, this afterload reducing effect can result in improved left ventricular ejection, increased cardiac output and reduced myocardial O demand. This brief review will focus primarily on mechanical ventilation and intrathoracic pressure as they affect right and left ventricular function and cardiac output.

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References
1.
GUYTON A, LINDSEY A, ABERNATHY B, Richardson T . Venous return at various right atrial pressures and the normal venous return curve. Am J Physiol. 1957; 189(3):609-15. DOI: 10.1152/ajplegacy.1957.189.3.609. View

2.
Vieillard-Baron A, Loubieres Y, Schmitt J, Page B, Dubourg O, Jardin F . Cyclic changes in right ventricular output impedance during mechanical ventilation. J Appl Physiol (1985). 1999; 87(5):1644-50. DOI: 10.1152/jappl.1999.87.5.1644. View

3.
Grubler M, Wigger O, Berger D, Blochlinger S . Basic concepts of heart-lung interactions during mechanical ventilation. Swiss Med Wkly. 2017; 147:w14491. DOI: 10.4414/smw.2017.14491. View

4.
Berger D, Moller P, Weber A, Bloch A, Bloechlinger S, Haenggi M . Effect of PEEP, blood volume, and inspiratory hold maneuvers on venous return. Am J Physiol Heart Circ Physiol. 2016; 311(3):H794-806. DOI: 10.1152/ajpheart.00931.2015. View

5.
Abraham E, Yoshihara G . Cardiorespiratory effects of pressure controlled ventilation in severe respiratory failure. Chest. 1990; 98(6):1445-9. DOI: 10.1378/chest.98.6.1445. View